利用芒果果皮提取物绿色合成金纳米粒子的尺寸依赖性表面等离子共振

Jared Deve P. Delicana, Romnick B. Unabia, Jay C. Dulog, Aldrin Lalem, Noel Lito B. Sayson, R. Capangpangan, A. Lubguban, Arnold A. Alguno
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摘要

金纳米粒子(AuNPs)具有可调节的表面等离子体共振(SPR)特性,而且易于合成,因此已被研究用于各种应用。AuNP 的生产主要依靠合成化学品来还原和稳定金前驱体。出于对生态环境的考虑,对环境友好型合成方法的需求与日俱增。这项工作介绍了一种使用芒果果皮提取物的绿色合成方法。这种提取物是通过浸渍干果皮获得的,可在 80°C 下作为金前驱体的还原剂。通过调节金离子的初始浓度,我们获得了不同大小的 AuNPs:0.1mM、0.25mM 和 0.5mM。紫外-可见光谱结果证实,AuNPs 的特征 SPR 峰值在 530 nm 附近,峰值偏移与金离子浓度密切相关。动态光散射(DLS)测量显示,不同浓度的 AuNPs 的流体力学直径分别为 89.5 nm、121.5 nm 和 144.5 nm。傅立叶变换(FTIR)分析确定了固有酚类和类黄酮在金前体还原中的作用。这项研究强调了芒果果皮提取物作为 AuNP 合成的可行替代品的潜力。这项研究可能会促进金纳米粒子在生物学、医学和环境修复方面的应用。
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Size-Dependent Surface Plasmon Resonance of Green Synthesized Gold Nanoparticles Using Mangifera indica Fruit Peel Extract
Gold nanoparticles (AuNPs) have been studied for various applications due to their adjustable surface plasmon resonance (SPR) properties and facile synthesis. AuNP production has predominantly relied on synthetic chemicals to reduce and stabilize gold precursors. There is an increasing demand for environmentally friendly synthesis methods due to ecological concerns. This work introduced a green synthesis approach using Mangifera indica fruit peel extract. Obtained through maceration of dried fruit peels, this extract served as a reducing agent for gold precursors at 80°C. We obtained varying sizes of AuNPs by manipulating the initial concentration of gold ions: 0.1mM, 0.25mM, and 0.5mM. The UV-vis spectroscopy results confirmed the signature SPR peak for AuNPs around 530 nm, with peak shifts highly dependent on the gold ion concentration. The dynamic light scattering (DLS) measurements revealed hydrodynamic diameters of 89.5 nm, 121.5 nm, and 144.5 nm for the various concentrations. The Fourier transform (FTIR) analysis identified the role of inherent phenols and flavonoids in gold precursor reduction. This study emphasizes the potential of Mangifera indica fruit peel extract as a viable alternative for AuNP synthesis. This study could possibly boost the utilization of gold nanoparticles towards applications in biology and medicine as well as environmental remediation.
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